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双相力调控的磷酸化位点暴露和 PSGL-1 结合的 ERM 解交联:通过导向分子动力学模拟研究 PSGL-1 信号转导的新见解。

Biphasic Force-Regulated Phosphorylation Site Exposure and Unligation of ERM Bound with PSGL-1: A Novel Insight into PSGL-1 Signaling via Steered Molecular Dynamics Simulations.

机构信息

Institute of Biomechanics/School of Bioscience and Bioengineering, South China University of Technology, Guangzhou 510006, China.

出版信息

Int J Mol Sci. 2020 Sep 25;21(19):7064. doi: 10.3390/ijms21197064.

Abstract

The PSGL-1-actin cytoskeleton linker proteins ezrin/radixin/moesin (ERM), an adaptor between P-selectin glycoprotein ligand-1 (PSGL-1) and spleen tyrosine kinase (Syk), is a key player in PSGL-1 signal, which mediates the adhesion and recruitment of leukocytes to the activated endothelial cells in flow. Binding of PSGL-1 to ERM initials intracellular signaling through inducing phosphorylation of Syk, but effects of tensile force on unligation and phosphorylation site exposure of ERM bound with PSGL-1 remains unclear. To answer this question, we performed a series of so-called "ramp-clamp" steered molecular dynamics (SMD) simulations on the radixin protein FERM domain of ERM bound with intracellular juxtamembrane PSGL-1 peptide. The results showed that, the rupture force of complex pulled with constant velocity was over 250 pN, which prevented the complex from breaking in front of pull-induced exposure of phosphorylation site on immunoreceptor tyrosine activation motif (ITAM)-like motif of ERM; the stretched complex structure under constant tensile forces <100 pN maintained on a stable quasi-equilibrium state, showing a high mechano-stabilization of the clamped complex; and, in consistent with the force-induced allostery at clamped stage, increasing tensile force (<50 pN) would decrease the complex dissociation probability but facilitate the phosphorylation site exposure, suggesting a force-enhanced biophysical connectivity of PSGL-1 signaling. These force-enhanced characters in both phosphorylation and unligation of ERM bound with PSGL-1 should be mediated by a catch-slip bond transition mechanism, in which four residue interactions on binding site were involved. This study might provide a novel insight into the transmembrane PSGL-1 signal, its biophysical connectivity and molecular structural basis for cellular immune responses in mechano-microenvironment, and showed a rational SMD-based computer strategy for predicting structure-function relation of protein under loads.

摘要

PSGL-1-肌动蛋白细胞骨架连接蛋白 ezrin/radixin/moesin(ERM)是 P 选择素糖蛋白配体-1(PSGL-1)和脾酪氨酸激酶(Syk)之间的衔接蛋白,是 PSGL-1 信号的关键参与者,介导白细胞在流动中与活化的内皮细胞的黏附和募集。PSGL-1 与 ERM 的结合通过诱导 Syk 的磷酸化引发细胞内信号转导,但张力对 ERM 与 PSGL-1 结合的解联和磷酸化位点暴露的影响尚不清楚。为了回答这个问题,我们对 ERM 的 FERM 结构域中与细胞内近膜 PSGL-1 肽结合的 radixin 蛋白进行了一系列所谓的“斜坡-钳”导向分子动力学(SMD)模拟。结果表明,以恒定速度拉动复合物的断裂力超过 250 pN,这阻止了复合物在牵拉诱导 ERM 的免疫受体酪氨酸激活基序(ITAM)样基序上的磷酸化位点暴露之前断裂;在<100 pN 的恒定拉伸力下拉伸的复合物结构保持在稳定的准平衡状态,显示出夹合复合物的高机械稳定性;与夹合阶段的力诱导变构一致,增加拉伸力(<50 pN)会降低复合物解离的概率,但会促进磷酸化位点的暴露,这表明 PSGL-1 信号的力增强生物物理连通性。与 PSGL-1 结合的 ERM 的磷酸化和解联的这些力增强特性应该由一个捕获-滑动键转换机制介导,其中涉及结合位点上的四个残基相互作用。这项研究可能为机械微环境中的跨膜 PSGL-1 信号及其生物物理连通性和分子结构基础提供新的见解,并展示了一种基于 SMD 的合理计算机策略,用于预测负载下蛋白质的结构-功能关系。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b2e5/7583015/e212ac35fe0d/ijms-21-07064-g001.jpg

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